US7955815B2 - Two-photon fluorescent probes for acidic vesicles in live cells and tissue and method of imaging acidic vesicles in live cells and tissue using the same - Google Patents
Two-photon fluorescent probes for acidic vesicles in live cells and tissue and method of imaging acidic vesicles in live cells and tissue using the same Download PDFInfo
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- US7955815B2 US7955815B2 US12/288,101 US28810108A US7955815B2 US 7955815 B2 US7955815 B2 US 7955815B2 US 28810108 A US28810108 A US 28810108A US 7955815 B2 US7955815 B2 US 7955815B2
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- FUVQYVZTQJOEQT-UHFFFAOYSA-N CC(=O)C1=CC2=C(C=C1)C=C(N(C)C)C=C2 Chemical compound CC(=O)C1=CC2=C(C=C1)C=C(N(C)C)C=C2 FUVQYVZTQJOEQT-UHFFFAOYSA-N 0.000 description 1
- NMKCEVKWTPOGTK-UHFFFAOYSA-N CC(=O)C1=CC2=C(C=C1)C=C(N(C)CC(=O)NC1=CC=C(N)C=C1)C=C2.CC(=O)C1=CC2=C(C=C1)C=C(N(C)CC(=O)NCCN(C)C)C=C2.COC1=C(N)C=CC(NC(=O)CN(C)C2=CC3=C(C=C2)C=C(C(C)=O)C=C3)=C1 Chemical compound CC(=O)C1=CC2=C(C=C1)C=C(N(C)CC(=O)NC1=CC=C(N)C=C1)C=C2.CC(=O)C1=CC2=C(C=C1)C=C(N(C)CC(=O)NCCN(C)C)C=C2.COC1=C(N)C=CC(NC(=O)CN(C)C2=CC3=C(C=C2)C=C(C(C)=O)C=C3)=C1 NMKCEVKWTPOGTK-UHFFFAOYSA-N 0.000 description 1
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- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/58—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving labelled substances
- G01N33/582—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving labelled substances with fluorescent label
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- C—CHEMISTRY; METALLURGY
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- C07C237/00—Carboxylic acid amides, the carbon skeleton of the acid part being further substituted by amino groups
- C07C237/02—Carboxylic acid amides, the carbon skeleton of the acid part being further substituted by amino groups having the carbon atoms of the carboxamide groups bound to acyclic carbon atoms of the carbon skeleton
- C07C237/04—Carboxylic acid amides, the carbon skeleton of the acid part being further substituted by amino groups having the carbon atoms of the carboxamide groups bound to acyclic carbon atoms of the carbon skeleton the carbon skeleton being acyclic and saturated
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/531—Production of immunochemical test materials
- G01N33/532—Production of labelled immunochemicals
- G01N33/533—Production of labelled immunochemicals with fluorescent label
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- the present invention relates to two-photon fluorescent probes for imaging acidic vesicles in live cells and tissue and a method for imaging acidic vesicles in live cells and tissue using the two-photon fluorescent probes. More particularly, the present invention relates to two-photon fluorescent probes that have a large penetration depth and are selectively and clearly capable of visualizing vesicles under acidic conditions, and a method for imaging acidic vesicles in live cells and tissue using the two-photon fluorescent probes.
- Lysosomes and lysosome-related organelles constitute a system of acidic compartments (pH 4.0-5.0), which contain a large number of enzymes and secretory proteins exhibiting a variety of functions. To determine their functions, a variety of membrane-permeable fluorescent pH and lysosomal probes have been developed with some of them being commercially available.
- TPM two-photon microscopy
- TPM employs two near-infrared (NIR) photons for excitation and is of particular interest in tissue imaging (W. Denk, J. H. Strickler, W. W. Webb, Science, 1990, 248, 73.; W. R. Zipfel; R. M. Williams; W. W. Webb, Nat. Biotechnol. 2003, 21, 1369).
- NIR near-infrared
- the absorption of two photons is a secondary non-linear optical phenomenon.
- the photons in the excited state transit to the ground state and emit energy as fluorescence corresponding to the bandgap energy. This energy emission is called ‘two-photon fluorescence’. It should be understood that the emitted photonic energy is greater than the photonic energy of an irradiation source.
- Substances emitting fluorescence by two-photon excitation are commonly termed ‘two-photon probes’.
- Such two-photon probes may be excited by means of a light source capable of providing photonic energy corresponding to the bandgap energy. This excitation is referred to as ‘one-photon excitation’.
- a fluorescence emission spectrum obtained by two-photon excitation has the same spectral properties as that obtained by one-photon excitation.
- a first characteristic of two-photon excitation is that the excitation occurs only near the limited three-dimensional regions of light irradiators, and therefore, fluorescence emission obtained by the excitation is localized in three-dimensional space, resulting in a minimization of background fluorescence.
- a second characteristic of two-photon excitation is that the wavelength of the irradiated light is different from that of the emitted fluorescence. Particularly, the two-photon excitation is useful in observing small-volume samples because the excitation volume is very small.
- two-photon microscopy capable of inducing two-photon excitation by irradiation of light in the near-infrared region is currently in the spotlight in bioimaging applications.
- the reason for this is due to the following advantages: i) little damage of biomolecules by irradiation of near-infrared light, which enables the application of two-photon microscopy to living cells; ii) large penetration depth of near-infrared light; and iii) minimized tissue auto-fluorescence.
- Two-photon probes used for two-photon microscopy must satisfy the following requirements: i) large two-photon cross section ( ⁇ TPA ) in the near-infrared region; ii) suitable water solubility, iii) high photostability; and iv) high binding selectivity for live cells and tissue.
- An ideal two-photon fluorescent probe for staining acidic vesicles in cytosol selectively permeates the cytosol and stains vesicles without staining membranes dividing the cytosol to emit fluorescence.
- conventional two-photon fluorescent probes stain membranes as well as cytosol to cause the problem of mistargeting. Under these circumstances, there is an urgent need to develop two-photon fluorescent probes that can selectively stain vesicles in cytosol under acidic conditions to visualize the vesicles.
- the first object can be accomplished by the provision of two-photon fluorescent probes for imaging acidic vesicles in live cells and tissue, represented by Formula 1:
- R 1 is (CH 3 ) 2 NCH 2 CH 2 — or
- R 2 is a hydrogen atom or a methoxy group
- the two-photon fluorescent probes of the present invention can be excited by light with a wavelength of 780 nm, have two-photon action cross sections ( ⁇ ) of at least 86 GM, and show two-photon emission spectra whose fluorescence intensity increases with decreasing pH of cells to be visualized.
- the two-photon fluorescent probes of the present invention show pK a values of 4 to 5 and have a water solubility of at least 5.0 ⁇ M.
- the absorption spectra of the two-photon fluorescent probes show bathochromic shifts with increasing solvent polarity.
- the two-photon fluorescent probes of the present invention can visualize acidic vesicles at a penetration depth of 250 ⁇ m.
- the second object can be accomplished by the provision of a method for imaging acidic vesicles in live cells and tissue, the method comprising introducing the two-photon fluorescent probe into cytosol to be visualized and observing two-photon excited fluorescence images emitted from the two-photon fluorescent probe.
- FIG. 1 including 1 a - 1 f , shows plots of fluorescence intensity against the concentrations of two-photon fluorescent probes according to the present invention
- FIG. 2 including 2 a - 2 f , shows absorption and emission spectra of two-photon fluorescent probes according to the present invention in 1,4-dioxane, DMF, EtOH, and H2O;
- FIG. 3 shows two-photon microscopy images of macrophages labeled with a two-photon fluorescent probe according to the present invention
- FIG. 4 shows two-photon microscopy images of macrophages labeled with another two-photon fluorescent probe according to the present invention
- FIG. 5 shows two-photon microscopy images of macrophages labeled with another two-photon fluorescent probe according to the present invention
- FIG. 6 shows two-photon excited fluorescence images obtained using a two-photon fluorescent probe of the present invention in Experimental Example 4;
- FIG. 7 shows two-photon excited fluorescence images obtained using another two-photon fluorescent probe of the present invention in Experimental Example 4;
- FIG. 8 shows one-photon absorption and emission spectra obtained using two-photon fluorescent probes of the present invention in Experimental Example 5;
- FIG. 9 shows fluorescence titration curves of two-photon fluorescent probes according to the present invention.
- FIG. 10 shows HOMO energy levels of a fluorophore and different proton binding sites of two-photon fluorescent probes prepared in Examples 1 and 2;
- FIG. 11 shows images of an acute rat hippocampal slice stained with a two-photon fluorescent probe (10 ⁇ M) prepared in Example 3;
- FIG. 12 shows fluorescence intensity of a two-photon fluorescent probe (5 ⁇ M) prepared in Example 2 in response to input laser power (I o );
- FIG. 13 shows two-photon action cross sections of the two-photon fluorescent probes according to the present invention, which were calculated based on the measured intensities of the two-photon induced fluorescence spectra of the probes in the wavelength range of 740-940 nm.
- the present invention provides two-photon fluorescent probes for real-time imaging of vesicles in live cells or tissue under acidic conditions, represented by Formula 1:
- R 1 is (CH 3 ) 2 NCH 2 CH 2 — or
- R 2 is a hydrogen atom or a methoxy group
- TP two-photon
- the present inventors chose 2-acetyl-6-(dimethylamino)naphthalene (‘acedan’) as a fluorophore because acedan-derived TP probes for Mg 2+ and Ca 2+ exhibited significant TP action cross section, for the bright two-photon microscopy (TPM) image at low probe concentration, and high photostability, thus allowing the detection of the metal ions deep inside live cells for over 1,100 sec.
- the present inventors have introduced aniline and o-methoxy aniline (pt a ⁇ 4) or a tertiary amine (pK a ⁇ 10) as the proton binding site via the amide linkage to the fluorophore.
- the two-photon fluorescent probes of the present invention may be the compounds of Formulae 2, 3 and 4:
- the two-photon fluorescent probes of Formulae 2 (‘AH1’) and 3 (‘AH2’) can be protonated at pH ⁇ 4 to emit two-photon excited fluorescence (TPEF), whereas the two-photon fluorescent probe of Formula 4 (‘AL1’) can emit TPEF in acidic vesicles where it can be accumulated as the protonated form.
- these probes are capable of imaging acidic vesicles in living cells at >100 ⁇ m depth without mistargeting and photobleaching problems.
- AL1 can visualize the transportation of acidic vesicles in the CA3 region for a long period of time with the use of two-photon microscopy (TPM).
- the probes AH1 and AH2 of the present invention include aniline or its derivative as a proton binding site, where a proton (H + ) is bound under acidic conditions, thus allowing the probes to have emission spectra in the same wavelength band even under various pH conditions.
- aniline (AH1) or o-methoxy-substituted aniline (AH2) structure providing a proton binding site undergoes photoinduced electron transfer to increase the two-photon fluorescence intensity of the compound, and as a result, more clear real-time images of acidic vesicles can be obtained.
- the two-photon fluorescent probes of the present invention selectively stain vesicles present in cytosol without staining membranes due to their relatively low molecular weights to emit clear fluorescence in the vesicles without any problems (e.g., mistargeting), thus allowing for imaging of the vesicles only.
- the two-photon fluorescent probes AH1 and AH2 of the present invention have pK a values of 4 to 5, indicating that the equilibrium points of the fluorescence titration curves of the probes are created around pH 4.0. Accordingly, the two-photon fluorescent probes of the present invention can emit distinct and strong fluorescence under acidic conditions lower than pH 4.0.
- the two-photon fluorescent probes of the present invention can be excited by light with a wavelength of 780 nm, whereas conventional fluorescent materials are excited by light in a wavelength band of 350 to 550 nm. That is, the excitation wavelength of the two-photon fluorescent probes according to the present invention is much longer than the excitation wavelengths of conventional fluorescent materials. Accordingly, the two-photon fluorescent probes of the present invention have a large penetration depth because of their long-wavelength excitation.
- the two-photon fluorescent probes of the present invention have two-photon action cross sections ( ⁇ ) of at least 86 GM when excited at 780 nm, which is a remarkably high level compared to the two-photon action cross sections ( ⁇ 10 GM) of conventional fluorescent materials, which will be explained in detail in the Example Section.
- the two-photon fluorescent probes of the present invention show two-photon emission spectra whose fluorescence intensity increases with decreasing pH of cells to be visualized. Accordingly, as for vesicles at a low pH (pH 4-5), two-photon fluorescence images with very high fluorescence intensity can be obtained using the two-photon fluorescent probes of the present invention.
- the two-photon fluorescent probes of the present invention provide optimum conditions for real-time imaging of acidic vesicles.
- solubilities of the two-photon fluorescent probes according to the present invention are 5.0 ⁇ M or higher, which are sufficient to stain cells.
- the absorption spectra of the two-photon fluorescent probes according to the present invention show bathochromic shifts with increasing solvent polarity, indicating shifts toward longer wavelengths under strongly acidic conditions and larger penetration depth of the probes, as explained above.
- This bathochromic shift is a characteristic that allows the two-photon fluorescent probes of the present invention to have a larger penetration depth under acidic conditions, i.e. highly polar conditions.
- the present invention also provides a method for imaging acidic vesicles in live cells and tissue which comprises introducing the two-photon fluorescent probe into cytosol to be visualized and observing two-photon excited fluorescence images emitted from the two-photon fluorescent probe.
- the imaging method of the present invention has advantages in that cells deep from the surface can be visualized and cells under acidic conditions can be visualized with high fluorescence intensity, thus enabling accurate monitoring of the cells.
- an intermediate 3 was obtained in the same manner as in Example 1, except that the intermediate 2 was used instead of p-phenylenediamine.
- the intermediate 3 was dissolved in trifluoroacetic acid at 0° C. and the solution was stirred for 2 h. After the addition of toluene, the solution was evaporated to afford AH2.
- Each of the probes AH1, AH2 and AL1 prepared in Examples 1-3 was dissolved in DMSO to prepare a stock solution (1.0 ⁇ 10 ⁇ 3 M).
- the solution was diluted to 6.0 ⁇ 10 ⁇ 3 ⁇ 6.0 ⁇ 10 ⁇ 5 M and added to a cuvette containing 3.0 mL of H 2 O by using a micro syringe. In all cases, the concentration of DMSO in H 2 O was maintained to be 0.2%.
- the fluorescence intensity of the probe was measured as a function of the probe concentration.
- FIG. 1 shows plots of fluorescence intensity against the concentrations of AH1 ( 1 a , 1 b ), AH2 ( 1 c , 1 d ) and AL1 ( 1 e , 1 f ).
- the fluorescence intensities of the probes increased in all wavelength bands with increasing probe concentration.
- the plots ( 1 b , 1 d and 1 f ) have a profile in which the fluorescence intensity increases with increasing probe concentration.
- the fluorescence intensity increases linearly until the dye concentration reaches a predetermined level. Thereafter, the profile shows a slight downward curvature.
- the maximum concentration in the linear region was taken as the solubility.
- the solubilities of the probes AH1, AH2, and AL1 were 5.0, 9.0, and 5.0 ⁇ M, respectively. These results indicate that the probes are sufficiently soluble to stain cells.
- the absorption and fluorescence spectra of the probes showed bathochromic shifts with the solvent polarity in the order, H 2 O>EtOH>DMF>1,4-dioxane, indicating that the probes can absorb light at long wavelengths and be excited by the light under extreme polar conditions, such as acidic conditions.
- TPM images of individual macrophages labeled with the probe AH2 of Example 2 were obtained ( FIG. 3 ).
- the TPM images of the AH2-labeled macrophages emitted TPEF only at 500-620 nm ( 3 b ), and not at 360-460 nm ( 3 a ), which was attributed to the membrane-bound probe.
- the macrophages were stained With LYSOTRACKERTM Red (LTR), a well known one-photon fluorescent probe, and a one-photon micrography (OPM) image thereof was obtained ( 3 c ).
- LTR LYSOTRACKERTM Red
- OPM one-photon micrography
- the TPM image was co-localized with the OPM image ( 3 d ).
- the two images ( 3 b , 3 c ) were well merged, confirming that the probe AH2 is clearly capable of imaging the acidic vesicles.
- Acidic vesicles were imaged in the same manner as in Experimental Example 3-(1), except that the probe AH1 of Example 1 was used instead of the probe AH2 of Example 2. The results are shown in FIG. 4 .
- the TPM images of the AH1-labeled macrophages emitted TPEF only at 500-620 nm ( 4 b ), and not at 360-460 nm ( 4 a ), which was attributed to the membrane-bound probe.
- the macrophages were stained with LTR and a one-photon micrography (OPM) image thereof was obtained ( 4 c ).
- the TPM image was co-localized with the OPM image ( 4 d ).
- the two images ( 4 b , 4 c ) were well merged, confirming that the probe AH1 is clearly capable of imaging the acidic vesicles.
- Acidic vesicles were imaged in the same manner as in Experimental Example 3-(1), except that the probe AL1 of Example 3 was used instead of the probe AH2 of Example 2. The results are shown in FIG. 5 .
- the TPM images of the AL1-labeled macrophages emitted TPEF only at 500-620 nm ( 5 b ), and not at 360-460 nm ( 5 a ), which was attributed to the membrane-bound probe.
- the macrophages were stained with LTR and a one-photon micrography (OPM) image thereof was obtained ( 5 c ).
- the TPM image was co-localized with the OPM image ( 5 d ).
- the two images ( 5 b , 5 c ) were well merged, confirming that the probe AL1 is clearly capable of imaging the acidic vesicles.
- the slices were then washed and transferred to glass-bottomed dishes.
- the TPEF images of the slices were obtained.
- FIG. 6 shows TPEF images ( 6 a , 6 b ) obtained using the probe AH2.
- the bright field image ( 6 a ) shows the CA1 and CA3 regions as well as the dentate gyrus (DG) upon magnification 10 ⁇ .
- TPM images were accumulated along the z-direction at the depth of ⁇ 100-250 ⁇ m with magnification 10 ⁇ ( 6 b ).
- the accumulated image reveals the average distribution of the acidic vesicles in the same regions.
- TPM images were taken at depths of 100 to 250 ⁇ m ( 6 c ). That is, the use of the probe AH2 was effective in obtaining TPEF images of cells at a depth of 250 ⁇ m.
- Each of the probes AH1 and AH2 was dissolved in a universal buffer solution (0.1 M citric acid, 0.1 M KH 2 PO 4 , 0.1 M Na 2 B 4 O 7 , 0.1 M Tris, 0.1 M KCl 10 mM). The pH of the solution was gradually decreased, and one-photon absorption and emission spectra of the solution were obtained ( FIG. 8 ).
- the fluorescence intensity of the solution increased with decreasing pH without any change in the profile of the absorption spectrum. It is believed that the probe emitted fluorescence with strong intensity through a photoinduced electron-transfer (PET) process when the protonation of the probe proceeded under acidic conditions (pH ⁇ 4).
- PET photoinduced electron-transfer
- One-photon absorption and emission spectra ( 8 e , 8 f , 8 g ) of the probe AL1 prepared in Example 3 reveal that the fluorescence intensity of the probe was maintained at a substantially constant level despite changes in acidity.
- the fluorescence intensities of the probes AH1 and AH2 were measured, and titration curves thereof were plotted ( FIG. 9 ).
- Y-axis represents the fluorescence intensity enhancement factor [(F ⁇ F o )/F o ] (F is the fluorescence intensity and F o is the minimum fluorescence intensity).
- the fluorescence intensities of the probes AH1 and AH2 increased dramatically around pH 4-5.
- the reason for the more dramatic change in the fluorescence intensity of the probe AH2 is possibly that the methoxy-substituted aniline generated greater photoinduced electron-transfer (PET) effect than the unsubstituted aniline.
- PET photoinduced electron-transfer
- the difference in PET effect is attributed to a difference in the HOMO energy levels of the proton binding sites and the fluorophore, which will be explained more fully below.
- FIG. 10 shows HOMO energy levels of the fluorophore and proton binding sites of the probes AH1 and AH2.
- the HOMO energy levels of the aniline having a methoxy group in the ortho-position and the unsubstituted aniline are ⁇ 4.827 eV and ⁇ 5.044 eV, respectively.
- the ortho-substituted aniline whose HOMO energy level is higher than the fluorophore, is stabilized by protonation to emit a higher energy, which accounts for stronger fluorescence intensity.
- FIG. 11 shows images of an acute rat hippocampal slice stained with the probe (10 ⁇ M) of Example 3.
- FIG. 11 shows an image ( 11 a ) of CA3 regions at a depth of ⁇ 120 ⁇ m with magnification 100 ⁇ , and enlarged images ( 11 b ) of a red box in 11 a .
- the real time images ( 11 b ) for 5 sec reveal rapid transportations of the acidic vesicles between cell body and axon terminal along the axon, demonstrating that the probe is capable of imaging real-time change in the position of acidic vesicles.
- I represents the fluorescence intensity
- I max and I min represent the maximum and minimum fluorescence intensity, respectively.
- the pK a values of the probes AH1 and AH2 calculated based on the measured fluorescence intensity are 4.42 ⁇ 0.03 and 4.18 ⁇ 0.01, respectively, implying that the inflection points (equilibrium points) of the fluorescence titration curves ( FIG. 9 ) of the probes are around pH 4.0. These results demonstrate strong fluorescence intensity of the probes under acidic conditions (pH ⁇ 4.0).
- FIG. 12 shows fluorescence intensity of the probe AH2 (5 ⁇ M) in response to input laser power (I o ).
- the plot of FIG. 12 showed a quadratic dependence of the fluorescence intensity of the probe on the input laser power, confirming the nonlinear absorption of the incident light in the probe.
- the small plot in FIG. 12 represents the relationship between the fluorescence intensity of the probe and the square of the input laser power (I o 2 ), indicating that the fluorescence intensity of the probe is proportional to the square of the incident laser power.
- the two-photon cross section ( ⁇ ) was determined by using femto second (fs) fluorescence measurement technique.
- ⁇ represents the two-photon cross section of the sample probe
- S represents the intensity of the signal collected by a detector
- ⁇ represents the fluorescence quantum yield
- ⁇ represents the overall fluorescence collection efficiency of the experimental apparatus
- c represents the number density of the molecules in solution
- ⁇ r represents the two-photon cross section of the reference.
- the two-photon action cross section of the sample probe was calculated by multiplying the two-photon cross section by the quantum yield.
- FIG. 13 shows two-photon action cross sections of the probes calculated based on the measured intensities of the two-photon induced fluorescence spectra of the probes in the wavelength range of 740-940 nm.
- the graph shows that the probes AH1, AH2 and AD had the largest two-photon action cross section (>86 GM) at a wavelength of 780 nm, 9-fold larger than that of LYSOTRACKERTM Red (LTR) ( ⁇ 10 GM).
- the two-photon fluorescent probes of the present invention can effectively bind to living cells and tissue under acidic conditions to produce two-photon excited fluorescence images with high intensity. Therefore, the two-photon fluorescent probes of the present invention can visualize acidic vesicles. In addition, the use of the two-photon fluorescent probes enables effective real-time monitoring of acidic vesicles.
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Description
is −5.164 eV, which is closer to that of the unsubstituted aniline. Hence, the ortho-substituted aniline, whose HOMO energy level is higher than the fluorophore, is stabilized by protonation to emit a higher energy, which accounts for stronger fluorescence intensity.
log [(I max −I)/(I−I min)]=pH−pKa (1)
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